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首页> 外文期刊>The Journal of Chemical Physics >ACCOUNTING FOR ELECTRON-ELECTRON AND ELECTRON-LATTICE EFFECTS IN CONJUGATED CHAINS AND RINGS
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ACCOUNTING FOR ELECTRON-ELECTRON AND ELECTRON-LATTICE EFFECTS IN CONJUGATED CHAINS AND RINGS

机译:共轭链和环中电子和晶格效应的核算

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Minimum total energy calculations are reported for pi-conjugated hydrocarbons including neutral (ground, 1 B-1(u), 2 (1)A(g)) and doped (1+ and 2+) chains and rings with up to eight carbon atoms. Two models are considered; first, a semiempirical pi-electron Hamiltonian that includes both electron-electron (Hubbard) and electron-lattice (Longuet-Higgins-Salem) interactions, and second, an accurate ab initio complete-active-space self-consistent-held (CASSCF) treatment that includes the pi-electron correlation effects most important in determining the bond geometries. The results of the ab initio calculations can be used to estimate the phenomenological parameters entering the semiempirical Hamiltonian and thus to obtain quantitative predictions of bond geometries from the semiempirical treatment. The two models yield qualitatively the same results for the bond geometries in all states considered, and the changes in bond geometry following excitation from ground to doped or excited states find natural interpretation in terms of short-chain limiting behaviors of soliton and polaron distortions familiar for longer chains. Further, the absolute values and sensitivities of the phenomenological parameters of the semiempirical model to various fitting schemes provide an indication of the different roles played by electron-lattice and electron-electron interactions in determining the properties of these systems. While electron-lattice interactions are found to be the most important factor in determining bond geometries, particularly in the ground and doped states, electron-electron interactions play an important and subtle role in determining the bond geometries and relative energetic orderings of the excited states. (C) 1996 American Institute of Physics. [References: 80]
机译:报道了π共轭碳氢化合物的最小总能量计算,包括中性(地面,1 B-1(u),2(1)A(g))和掺杂的(1+和2+)链和最多含八个碳的环原子。考虑了两个模型;首先是半经验的π电子哈密顿量,既包含电子-电子(哈伯德)相互作用,又包含电子-晶格(Longuet-Higgins-Salem)相互作用,其次是精确的从头算起的完全活动空间自洽保持式(CASSCF)在确定键的几何形状时最重要的包括π电子相关效应的处理。从头计算的结果可用于估计进入半经验哈密顿量的现象学参数,从而从半经验处理中获得键几何形状的定量预测。在考虑的所有状态下,两个模型对于键的几何形状在质量上均得出相同的结果,从基态激发到掺杂态或激发态后,键的几何形状的变化可以从孤子和极化子畸变的短链限制行为中找到自然的解释。较长的链条。此外,半经验模型的现象学参数对各种拟合方案的绝对值和敏感性提供了电子-晶格和电子-电子相互作用在确定这些系统的性质中所起的不同作用的指示。尽管发现电子-晶格相互作用是决定键几何形状的最重要因素,尤其是在基态和掺杂态中,但电子-电子相互作用在确定键几何形状和激发态的相对能序方面起着重要而微妙的作用。 (C)1996年美国物理研究所。 [参考:80]

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